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引用次数: 1

摘要

已经提出了几个系统,通过分析智能手机拍摄的膳食图像来自动评估食物摄入和饮食支持。一个典型的系统包括检测/分割现有食物,识别每一种食物,计算它们的体积,最后估计相应的营养信息的计算阶段。尽管这一新兴领域在过去几年中取得了显著进展,但由于缺乏标准化的数据集和已建立的评估框架,使得方法之间的比较变得困难,并最终阻碍了对该问题的正式定义。在本文中,我们概述了用于评估所提议的自动膳食评估系统的计算机视觉阶段的数据集和协议。
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Performance Evaluation Methods of Computer Vision Systems for Meal Assessment
Several systems have been proposed for the automatic food intake assessment and dietary support by analyzing meal images captured by smartphones. A typical system consists of computational stages that detect/segment the existing foods, recognize each of them, compute their volume, and finally estimate the corresponding nutritional information. Although this newborn field has made remarkable progress over the last years, the lack of standardized datasets and established evaluation frameworks has made difficult the comparison between methods and eventually prevented the formal definition of the problem. In this paper, we present an overview of the datasets and protocols used for evaluating the computer vision stages of the proposed automatic meal assessment systems.
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Food Image Recognition Using Very Deep Convolutional Networks Session details: Keynote Address Innovative Technology and Dietary Assessment in Low-Income Countries GoCARB: A Smartphone Application for Automatic Assessment of Carbohydrate Intake Session details: Oral Paper Session 1
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